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治疗性抗IgE抗体奥马珠单抗的变构作用机制。

Allosteric mechanism of action of the therapeutic anti-IgE antibody omalizumab.

作者信息

Davies Anna M, Allan Elizabeth G, Keeble Anthony H, Delgado Jean, Cossins Benjamin P, Mitropoulou Alkistis N, Pang Marie O Y, Ceska Tom, Beavil Andrew J, Craggs Graham, Westwood Marta, Henry Alistair J, McDonnell James M, Sutton Brian J

机构信息

From the Randall Division of Cell and Molecular Biophysics, King's College London, New Hunt's House, Guy's Campus, London SE1 1UL.

the Medical Research Council and Asthma UK Centre in Allergic Mechanisms of Asthma, London SE1 1UL, and.

出版信息

J Biol Chem. 2017 Jun 16;292(24):9975-9987. doi: 10.1074/jbc.M117.776476. Epub 2017 Apr 24.

Abstract

Immunoglobulin E and its interactions with receptors FcϵRI and CD23 play a central role in allergic disease. Omalizumab, a clinically approved therapeutic antibody, inhibits the interaction between IgE and FcϵRI, preventing mast cell and basophil activation, and blocks IgE binding to CD23 on B cells and antigen-presenting cells. We solved the crystal structure of the complex between an omalizumab-derived Fab and IgE-Fc, with one Fab bound to each Cϵ3 domain. Free IgE-Fc adopts an acutely bent structure, but in the complex it is only partially bent, with large-scale conformational changes in the Cϵ3 domains that inhibit the interaction with FcϵRI. CD23 binding is inhibited sterically due to overlapping binding sites on each Cϵ3 domain. Studies of omalizumab Fab binding in solution demonstrate the allosteric basis for FcϵRI inhibition and, together with the structure, reveal how omalizumab may accelerate dissociation of receptor-bound IgE from FcϵRI, exploiting the intrinsic flexibility and allosteric potential of IgE.

摘要

免疫球蛋白E及其与受体FcϵRI和CD23的相互作用在过敏性疾病中起着核心作用。奥马珠单抗是一种临床批准的治疗性抗体,它抑制IgE与FcϵRI之间的相互作用,防止肥大细胞和嗜碱性粒细胞活化,并阻断IgE与B细胞和抗原呈递细胞上的CD23结合。我们解析了奥马珠单抗衍生的Fab与IgE-Fc复合物的晶体结构,其中一个Fab与每个Cϵ3结构域结合。游离的IgE-Fc呈锐角弯曲结构,但在复合物中它只是部分弯曲,Cϵ3结构域发生大规模构象变化,从而抑制与FcϵRI的相互作用。由于每个Cϵ3结构域上的结合位点重叠,空间位阻抑制了CD23的结合。对溶液中奥马珠单抗Fab结合的研究证明了FcϵRI抑制的变构基础,并且与结构一起揭示了奥马珠单抗如何利用IgE的内在灵活性和变构潜力加速受体结合的IgE从FcϵRI上解离。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de6e/5473249/5b178b5685e3/zbc0261768040001.jpg

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